我有一个球员表现的表格:

CREATE TABLE TopTen (
  id INT UNSIGNED PRIMARY KEY AUTO_INCREMENT,
  home INT UNSIGNED NOT NULL,
  `datetime`DATETIME NOT NULL,
  player VARCHAR(6) NOT NULL,
  resource INT NOT NULL
);

哪个查询将为每个不同的家庭返回包含其datetime最大值的行?换句话说,我如何通过最大datetime(按home分组)进行过滤,并在结果中仍然包括其他非分组、非聚合列(例如player) ?

对于这个示例数据:

INSERT INTO TopTen
  (id, home, `datetime`, player, resource)
VALUES
  (1, 10, '04/03/2009', 'john', 399),
  (2, 11, '04/03/2009', 'juliet', 244),
  (5, 12, '04/03/2009', 'borat', 555),
  (3, 10, '03/03/2009', 'john', 300),
  (4, 11, '03/03/2009', 'juliet', 200),
  (6, 12, '03/03/2009', 'borat', 500),
  (7, 13, '24/12/2008', 'borat', 600),
  (8, 13, '01/01/2009', 'borat', 700)
;

结果应该是:

id home datetime player resource
1 10 04/03/2009 john 399
2 11 04/03/2009 juliet 244
5 12 04/03/2009 borat 555
8 13 01/01/2009 borat 700

我尝试了一个子查询获得每个家庭的最大日期时间:

-- 1 ..by the MySQL manual: 

SELECT DISTINCT
  home,
  id,
  datetime AS dt,
  player,
  resource
FROM TopTen t1
WHERE `datetime` = (SELECT
  MAX(t2.datetime)
FROM TopTen t2
GROUP BY home)
GROUP BY `datetime`
ORDER BY `datetime` DESC

结果集有130行,但数据库有187行,这表明结果包括home的一些副本。

然后我尝试连接到一个子查询,为每个行id获得最大日期时间:

-- 2 ..join

SELECT
  s1.id,
  s1.home,
  s1.datetime,
  s1.player,
  s1.resource
FROM TopTen s1
JOIN (SELECT
  id,
  MAX(`datetime`) AS dt
FROM TopTen
GROUP BY id) AS s2
  ON s1.id = s2.id
ORDER BY `datetime`

没有。给出所有的记录。

我尝试了各种奇特的查询,每一个都有不同的结果,但没有一个能让我更接近解决这个问题。


当前回答

这将工作,即使你有两行或更多的每个家庭具有相等的DATETIME:

SELECT id, home, datetime, player, resource
FROM   (
       SELECT (
              SELECT  id
              FROM    topten ti
              WHERE   ti.home = t1.home
              ORDER BY
                      ti.datetime DESC
              LIMIT 1
              ) lid
       FROM   (
              SELECT  DISTINCT home
              FROM    topten
              ) t1
       ) ro, topten t2
WHERE  t2.id = ro.lid

其他回答

您也可以尝试这种方法,对于大型表,查询性能会更好。当每个家庭的记录不超过两个且日期不同时,它就能工作。更好的通用MySQL查询是上面Michael La Voie提出的。

SELECT t1.id, t1.home, t1.date, t1.player, t1.resource
FROM   t_scores_1 t1 
INNER JOIN t_scores_1 t2
   ON t1.home = t2.home
WHERE t1.date > t2.date

或者在Postgres或那些提供分析函数的dbs的情况下尝试

SELECT t.* FROM 
(SELECT t1.id, t1.home, t1.date, t1.player, t1.resource
  , row_number() over (partition by t1.home order by t1.date desc) rw
 FROM   topten t1 
 INNER JOIN topten t2
   ON t1.home = t2.home
 WHERE t1.date > t2.date 
) t
WHERE t.rw = 1

下面是T-SQL版本:

-- Test data
DECLARE @TestTable TABLE (id INT, home INT, date DATETIME, 
  player VARCHAR(20), resource INT)
INSERT INTO @TestTable
SELECT 1, 10, '2009-03-04', 'john', 399 UNION
SELECT 2, 11, '2009-03-04', 'juliet', 244 UNION
SELECT 5, 12, '2009-03-04', 'borat', 555 UNION
SELECT 3, 10, '2009-03-03', 'john', 300 UNION
SELECT 4, 11, '2009-03-03', 'juliet', 200 UNION
SELECT 6, 12, '2009-03-03', 'borat', 500 UNION
SELECT 7, 13, '2008-12-24', 'borat', 600 UNION
SELECT 8, 13, '2009-01-01', 'borat', 700

-- Answer
SELECT id, home, date, player, resource 
FROM (SELECT id, home, date, player, resource, 
    RANK() OVER (PARTITION BY home ORDER BY date DESC) N
    FROM @TestTable
)M WHERE N = 1

-- and if you really want only home with max date
SELECT T.id, T.home, T.date, T.player, T.resource 
    FROM @TestTable T
INNER JOIN 
(   SELECT TI.id, TI.home, TI.date, 
        RANK() OVER (PARTITION BY TI.home ORDER BY TI.date) N
    FROM @TestTable TI
    WHERE TI.date IN (SELECT MAX(TM.date) FROM @TestTable TM)
)TJ ON TJ.N = 1 AND T.id = TJ.id

编辑 不幸的是,MySQL中没有RANK() OVER函数。 但它可以被模拟,见模拟分析(AKA排名)函数与MySQL。 这是MySQL版本:

SELECT id, home, date, player, resource 
FROM TestTable AS t1 
WHERE 
    (SELECT COUNT(*) 
            FROM TestTable AS t2 
            WHERE t2.home = t1.home AND t2.date > t1.date
    ) = 0

希望下面的查询将给出所需的输出:

Select id, home,datetime,player,resource, row_number() over (Partition by home ORDER by datetime desc) as rownum from tablename where rownum=1
SELECT  tt.*
FROM    TestTable tt 
INNER JOIN 
        (
        SELECT  coord, MAX(datetime) AS MaxDateTime 
        FROM    rapsa 
        GROUP BY
                krd 
        ) groupedtt
ON      tt.coord = groupedtt.coord
        AND tt.datetime = groupedtt.MaxDateTime

@ michael接受的答案在大多数情况下都很好,但它失败了,如下所示。

在这种情况下,如果有2行具有HomeID和Datetime相同的查询将返回这两行,而不是不同的HomeID,在查询中添加distinct如下所示。

SELECT DISTINCT tt.home  , tt.MaxDateTime
FROM topten tt
INNER JOIN
    (SELECT home, MAX(datetime) AS MaxDateTime
    FROM topten
    GROUP BY home) groupedtt 
ON tt.home = groupedtt.home 
AND tt.datetime = groupedtt.MaxDateTime